Electron quantum metamaterials in van der Waals heterostructures

被引:0
|
作者
Justin C. W. Song
Nathaniel M. Gabor
机构
[1] Nanyang Technological University,Division of Physics and Applied Physics, School of Physical and Mathematical Sciences
[2] Institute of High Performance Computing,Department of Physics and Astronomy
[3] Agency for Science,Laboratory of Quantum Materials Optoelectronics
[4] Technology and Research,undefined
[5] University of California,undefined
[6] University of California,undefined
[7] Canadian Institute for Advanced Research,undefined
来源
Nature Nanotechnology | 2018年 / 13卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
In recent decades, scientists have developed the means to engineer synthetic periodic arrays with feature sizes below the wavelength of light. When such features are appropriately structured, electromagnetic radiation can be manipulated in unusual ways, resulting in optical metamaterials whose function is directly controlled through nanoscale structure. Nature, too, has adopted such techniques—for example in the unique colouring of butterfly wings—to manipulate photons as they propagate through nanoscale periodic assemblies. In this Perspective, we highlight the intriguing potential of designer structuring of electronic matter at scales at and below the electron wavelength, which affords a new range of synthetic quantum metamaterials with unconventional responses. Driven by experimental developments in stacking atomically layered heterostructures—such as mechanical pick-up/transfer assembly—atomic-scale registrations and structures can be readily tuned over distances smaller than characteristic electronic length scales (such as the electron wavelength, screening length and electron mean free path). Yet electronic metamaterials promise far richer categories of behaviour than those found in conventional optical metamaterial technologies. This is because, unlike photons, which scarcely interact with each other, electrons in subwavelength-structured metamaterials are charged and strongly interact. As a result, an enormous variety of emergent phenomena can be expected and radically new classes of interacting quantum metamaterials designed.
引用
收藏
页码:986 / 993
页数:7
相关论文
共 50 条
  • [1] Electron quantum metamaterials in van der Waals heterostructures
    Song, Justin C. W.
    Gabor, Nathaniel M.
    NATURE NANOTECHNOLOGY, 2018, 13 (11) : 986 - 993
  • [2] Quantum microscopy with van der Waals heterostructures
    A. J. Healey
    S. C. Scholten
    T. Yang
    J. A. Scott
    G. J. Abrahams
    I. O. Robertson
    X. F. Hou
    Y. F. Guo
    S. Rahman
    Y. Lu
    M. Kianinia
    I. Aharonovich
    J.-P. Tetienne
    Nature Physics, 2023, 19 : 87 - 91
  • [3] Quantum microscopy with van der Waals heterostructures
    Healey, A. J.
    Scholten, S. C.
    Yang, T.
    Scott, J. A.
    Abrahams, G. J.
    Robertson, I. O.
    Hou, X. F.
    Guo, Y. F.
    Rahman, S.
    Lu, Y.
    Kianinia, M.
    Aharonovich, I
    Tetienne, J-P
    NATURE PHYSICS, 2023, 19 (01) : 87 - +
  • [4] van der Waals metamaterials
    Dorrell, William
    Pirie, Harris
    Gardezi, S. Minhal
    Drucker, Nathan C.
    Hoffman, Jennifer E.
    PHYSICAL REVIEW B, 2020, 101 (12)
  • [5] Van der Waals heterostructures
    Barnes, Natalie
    NATURE REVIEWS METHODS PRIMERS, 2022, 2 (01):
  • [6] Van der Waals heterostructures
    Geim, A. K.
    Grigorieva, I. V.
    NATURE, 2013, 499 (7459) : 419 - 425
  • [7] Van der Waals heterostructures
    Nature Reviews Methods Primers, 2
  • [8] Van der Waals heterostructures
    A. K. Geim
    I. V. Grigorieva
    Nature, 2013, 499 : 419 - 425
  • [9] Superconducting Quantum Interference in Twisted van der Waals Heterostructures
    Farrar, Liam S.
    Nevill, Aimee
    Lim, Zhen Jieh
    Balakrishnan, Geetha
    Dale, Sara
    Bending, Simon J.
    NANO LETTERS, 2021, 21 (16) : 6725 - 6731
  • [10] Van der Waals heterostructures and devices
    Yuan Liu
    Nathan O. Weiss
    Xidong Duan
    Hung-Chieh Cheng
    Yu Huang
    Xiangfeng Duan
    Nature Reviews Materials, 1